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I have this data:

self.data = list: [(1, 1, 5.0),
                   (1, 2, 3.0),
                   (1, 3, 4.0),
                   (2, 1, 4.0),
                   (2, 2, 2.0),
                   (2, 3, 4.0),
                   (2, 5, 3.0),
                   (3, 2, 2.0),
                   (3, 4, 4.0),
                   (3, 5, 3.0)]

When I run this code:

for mid, group in itertools.groupby(self.data, key=operator.itemgetter(0)):

for list(group) I get:

list: [(1, 1, 5.0),
       (1, 2, 3.0),
       (1, 3, 4.0)]

which is what I want.

But if I use 1 instead of 0

for mid, group in itertools.groupby(self.data, key=operator.itemgetter(1)):

to group by the second number in the tuples, I only get:

list: [(1, 1, 5.0)]

even though there are other tuples that have "1" in that 1 (2nd) position.

share|improve this question
up vote 10 down vote accepted

itertools.groupby collects together contiguous items with the same key. If you want all items with the same key, you have to sort self.data first.

for mid, group in itertools.groupby(
    sorted(self.data,key=operator.itemgetter(1)), key=operator.itemgetter(1)):
share|improve this answer
    
I had sorted previously on position zero. So I just sorted again before doing the groupby and it works. self.data.sort(key=operator.itemgetter(1)) – user994165 Nov 14 '11 at 2:41

Variant without sorting (via dictionary). Should be better performance-wise.

def full_group_by(l, key=lambda x: x):
    d = defaultdict(list)
    for item in l:
        d[key(item)].append(item)
    return d.items()
share|improve this answer

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